Efficiently Controlling the 3D Thermal Conductivity of a Polymer Nanocomposite via a Hyperelastic Double-Continuous Network of Graphene and Sponge

被引:253
|
作者
Qin, Mengmeng [1 ,2 ]
Xu, Yuxiao [1 ]
Cao, Rong [1 ]
Feng, Wei [3 ]
Chen, Li [1 ,2 ]
机构
[1] Tianjin Univ Technol, Sch Mat Sci & Engn, Tianjin 300384, Peoples R China
[2] Minist Educ, Tianjin Key Lab Photoelect Display Mat & Devices, Key Lab Photoelect Display Mat & Devices, Tianjin 300384, Peoples R China
[3] Tianjin Univ, Sch Mat Sci & Engn, Tianjin 300072, Peoples R China
基金
中国博士后科学基金; 中国国家自然科学基金; 美国国家科学基金会;
关键词
controllable thermal conductivity; double-continuous networks; hyperelastic deformation; polymer nanocomposites; CHEMICAL-VAPOR-DEPOSITION; PHASE-CHANGE MATERIALS; COMPOSITES; SKIN; STRENGTH; AEROGEL; ARCHITECTURE; PERFORMANCE; MANAGEMENT; POLYIMIDE;
D O I
10.1002/adfm.201805053
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Graphene-reinforced polymer composites with high thermal conductivity show attractive prospects as thermal transfer materials in many applications such as intelligent robotic skin. However, for the most reported composites, precise control of the thermal conductivity is not easily achieved, and the improvement efficiency is usually low. To effectively control the 3D thermal conductivity of graphene-reinforced polymer nanocomposites, a hyperelastic double-continuous network of graphene and sponge is developed. The structure (orientation, density) and thermal conductivity (in-plane, cross-plane) of the resulting composites can be effectively controlled by adjusting the preparation and deformation parameters (unidirectional, multidirectional) of the network. Based on the experimental and theoretical simulation results, the thermal conduction mechanism is summarized as a two-stage transmission of phonons. The in-plane thermal conductivity increases from 0.175 to 1.68 W m(-1) K-1 when the directional compression ratio increases from 0% to 95%, and the corresponding enhancement efficiency exceeds 300. The 3D thermal conductivity reaches a maximum of 2.19 W m(-1) K-1 when the compression ratio is 70% in three directions, and the graphene content is 4.82 wt%. Moreover, the thermal conduction network can be largely prepared by power-driven roller equipment, making the composite an ideal candidate for sensitive robotic skin for temperature detection.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] 3D graphene paraffin composites based on sponge skeleton for photo thermal conversion and energy storage
    Cheng, Gong
    Wang, Xinzhi
    He, Yurong
    APPLIED THERMAL ENGINEERING, 2020, 178
  • [22] Preparation and thermal performances of 3D graphene network/epoxy resin thermal interface composites
    Sun Y.
    Tao C.
    Ban J.
    Luo H.
    Zhu Y.
    Li M.
    Fuhe Cailiao Xuebao/Acta Materiae Compositae Sinica, 2017, 34 (06): : 1199 - 1204
  • [23] Construction of 3D interconnected boron nitride/carbon nanofiber hybrid network within polymer composite for thermal conductivity improvement
    Cui, Yexiang
    Xu, Fei
    Bao, Di
    Gao, Yueyang
    Peng, Jianwen
    Lin, Dan
    Geng, Haolei
    Shen, Xiaosong
    Zhu, Yanji
    Wang, Huaiyuan
    JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2023, 147 : 165 - 175
  • [24] 3D printing strong and conductive geo-polymer nanocomposite structures modified by graphene oxide
    Zhong, Jing
    Zhou, Guo-Xiang
    He, Pei-Gang
    Yang, Zhi-Hua
    Jia, De-Chang
    CARBON, 2017, 117 : 421 - 426
  • [25] Analysis of thermal behavior in 3D printing of continuous fiber reinforced polymer composites
    Li, Shixian
    Correia, J. P. M.
    Wang, Kui
    Ahzi, Said
    MATERIAL FORMING, ESAFORM 2024, 2024, 41 : 2573 - 2583
  • [26] Significantly enhanced thermal conductivity of polymer composites via establishing double-percolated expanded graphite/multi-layer graphene hybrid filler network
    Liu, Chao
    Wu, Wei
    Drummer, Dietmar
    Wang, Yi
    Chen, Qiming
    Liu, Xingrong
    Schneider, Kevin
    EUROPEAN POLYMER JOURNAL, 2021, 160
  • [27] Construction of a 3D multiple network skeleton by the thiol-Michael addition click reaction to fabricate novel polymer/graphene aerogels with exceptional thermal conductivity and mechanical properties
    Song, Shiqiang
    Zhang, Yong
    JOURNAL OF MATERIALS CHEMISTRY A, 2017, 5 (42) : 22352 - 22360
  • [28] Thermal conductivity of porous plastics manufactured by 3D printing: Controlling the design of the cavities and corresponding effects
    Muhammad, Ahmed K.
    Mohammed, Tawfeeq W.
    Resan, Kadhim K.
    JOURNAL OF THERMAL ENGINEERING, 2025, 11 (01): : 226 - 239
  • [29] Fabrication of high thermal and electrical conductivity composites via electroplating Cu network on 3D PEEK/CF felt skeletons
    Sun, Youli
    Zhang, Mei
    Zhang, Yunhe
    Luan, Jiashuang
    Dang, Hongbo
    Jiang, Dong
    Yang, Yanhua
    COMPOSITES COMMUNICATIONS, 2021, 28
  • [30] Thermal aware Graphene Based Through Silicon Via Design for 3D IC
    Hossain, Nahid M.
    Hossain, MunEm
    Bin Yousuf, Abdul Hamid
    Chowdhury, Masud H.
    2013 IEEE INTERNATIONAL 3D SYSTEMS INTEGRATION CONFERENCE (3DIC), 2013,